Field of the Invention
[0001] The invention relates generally to self-inflating tires and, more specifically, to
a pump mechanism for such tires.
Backaround of the Invention
[0002] Normal air diffusion reduces tire pressure over time. The natural state of tires
is under inflated. Accordingly, drivers must repeatedly act to maintain tire pressures
or they will see reduced fuel economy, tire life and reduced vehicle braking and handling
performance. Tire Pressure Monitoring Systems have been proposed to warn drivers when
tire pressure is significantly low. Such systems, however, remain dependant upon the
driver taking remedial action when warned to re-inflate a tire to recommended pressure.
It is a desirable, therefore, to incorporate a self-inflating feature within a tire
that will self-inflate the tire in order to compensate for any reduction in tire pressure
over time without the need for driver intervention.
Summary of the Invention
[0003] The invention relates to a self-inflating tire assembly in accordance with claim
1.
[0004] Dependent claims refer to preferred embodiments of the invention.
Definitions
[0005] "Axial" and "axially" means lines or directions thatare parallel to the axis of rotation
of the tire.
[0006] "Circumferential" means lines or directions extending along the perimeter of the
surface of the annular tread perpendicular to the axial direction.
[0007] "Equatorial Centerplane (CP)" means the plane perpendicular to the tire's axis of
rotation and passing through the center of the tread.
[0008] "Footprint" means the contact patch or area of contact of the tire tread with a flat
surface at zero speed and under normal load and pressure.
[0009] "Lateral" means an axial direction.
[0010] "Peristaltic" means operating by means of wave-like contractions that propel contained
matter, such as air, along tubular pathways.
[0011] "Radial" and "radially" means directions radially toward or away from the axis of
rotation of the tire.
Brief Description of the Drawings
[0012] The invention will be described by way of example and with reference to the accompanying
drawings in which:
FIG. 1 is an side view of tire having a pump assembly mounted therein;
FIG. 2 is a cross-sectional view of the bead area of the tire of FIG. 1;
FIG. 3 is a cross-sectional view of a first embodiment of a pump assembly;
FIGS. 4-6 illustrate assembly of the pump assembly;
FIG. 7 illustrates a side view of the tire during operation of the pump to the tire
cavity when the tire rotates.
FIG. 8 is a cross-sectional view of a second embodiment of a pump assembly;
FIGS. 9-12 illustrate a third embodiment of a pump assembly.
Detailed Description of the Invention
[0013] Referring to FIGS. 1 and 2, a tire assembly 10 of the present invention includes
a tire 12 and a pump assembly 14. The tire mounts in a conventional fashion to a conventional
tire rim 16. The tire is of conventional construction, having a ground engaging tread
region 38, and a pair of sidewalls 32 extending from the tread to the bead areas 34
mounted on the rim 16. The tire and rim enclose a tire cavity 30 for holding pressurized
air.
[0014] As shown in FIGS. 1 and 2, the pump assembly 14 includes a pump 41 that is assemblied
with a passageway 43 located in the sidewall area of the tire, preferably near the
bead region. Although the positioning of the pump 41 is specifically shown near the
bead region 34 and the rim surface 26, it is not limited to same, and may be located
at any region of the tire such as anywhere in the sidewall or tread that undergoes
compression.
[0015] A passageway 43 is formed in the tire, preferably in the sidewall of the tire and
is preferably annular in shape. The pump 41 is made of a tube or a pre-molded tube
shape in the tire formed of a resilient, flexible material such as plastic, silicone,
elastomer or rubber compounds, and is capable of withstanding repeated deformation
cycles when the tube is deformed into a flattened condition subject to external force
and, upon removal of such force, returns to an original condition. The tube is of
a diameter sufficient to operatively pass a volume of air sufficient for the purposes
described herein and allow a positioning of the tube in an operable location within
the tire assembly as will be described. Preferably, the tube has a circular cross-sectional
shape, although other shapes such as elliptical or lens shape may be utilized.
[0016] Figure 4 illustrates how the pump is constructed. The pump is formed from a tube
60 preferably including one or more optional pockets 62 for receiving miniature check
valve 50. The miniature check valve is preferably a duckbill check valve, although
other type of miniature check valves such as umbrella valve or ball valve may be utilized.
The check valves 50 are inserted into the tube 60. If pockets 62 are utilized, the
check valves are inserted into each pocket 62 as shown in Figure 5. The check valves
50 are spaced apart from each other a desired distance L. L may range from about 12
mm to about 150 mm and which depends on tire size/ load capacity and tire inflation
limit. The check valves are aligned in the same direction. An optional cover strip
of rubber 66 as shown in Figure 6 may be applied over the assembly of Figure 5.
[0017] Figure 3 illustrates the tube 60 arranged into a pump 41. The pump 41 has an inlet
end 41a and an outlet end 41b, with the plurality of check valves 50 arranged in the
tube and spaced apart a distance L. The inlet end 41a is in fluid communication with
the atmospheric air. The tube outlet end is in fluid communication with the tire cavity
30. As shown, the inlet end 41a and the outlet end 41b are spaced apart in the range
of about 330- 360 degrees. Other variations may be utilized, such as two 180 degree
pumps as shown in Fig. 8, or other angular variations such as 270 degrees (not shown),
etc. Pump outlet end 41b extends into the tire cavity so that it is in fluid communication
with the tire cavity. The outlet end may further include an optional check valve 45
to prevent backflow of air from the cavity into the pump 41.
[0018] As will be appreciated from FIG. 7 and FIG. 3, as the tire rotates in a direction
of rotation 88, a footprint 200 is formed against the ground surface 98. A compressive
force 104 is directed into the tire from the footprint 200 and acts to flatten a segment
110 of the pump 41. Flattening of the segment 110 of the pump 41 forces air from the
flattened segment 110, in the direction shown by arrow 84, through the check valve
50 and into an adjacent segment 110'. The check valves 50 prevents the reverse flow
of air (counterclockwise) in each tube segment.
[0019] As the tire continues to rotate in direction 88, the pump tube 41 is sequentially
flattened or squeezed segment by segment 110, 110', 110" etc. The sequential flattening
of the pump tube 41 segment by segment causes the column of air located between the
flattened segments to be pumped in the direction 84 to the outlet of the pump and
then into the tire cavity. The progression of squeezed or flattened tube segments
can be seen to move in a clockwise direction, counter to the tire rotation in direction
88. As segment 110 moves away from the footprint 100, the compression forces within
the tire from the footprint region are eliminated and the segment 110 is free to resiliently
reconfigure into an unflattened state as segment 110 refills with air from the inlet
end. The above-described cycle is then repeated for each tire revolution, each rotation
resulting in pumped air going into the tire cavity. Even if the tire rotation direction
88 is the same as direction 84, pump 41 will generate similar pump action in the direction
84 (bi-directional pumping accomplished by check valve controlling the flow direction)
with slightly lower pumping efficiency.
[0020] Figure 8 illustrates a second embodiment of first and second pump assembly 100, 210,
respectively. The first and second pump assemblies are configured into two 180 degree
pumps 100, 210. Each pump 100, 210 includes a tube 60 having a plurality of check
valves 50 mounted therein. Pump 100 has the plurality of check valves oriented to
allow fluid flow in the clockwise direction, opposite the tire rotation direction
122. The check valves prevent fluid flow in the direction of tire rotation. Pump 210
has its inlet end 210a oriented adjacent to the inlet end 100a of pump 100. The inlet
ends 100a, 210a are each in fluid communication with the atmospheric air. Pump 210
has its check valves 50 oriented to allow fluid to flow in the counterclockwise direction,
same as the tire rotation direction. Preferably, a check valve 50 is located at the
inlet end 100a, 210a and at the outlet end 100b, 210b of the tube. The check valves
50 prevent backflow from the tire cavity into the tubes 100, 210. The tube outlet
ends 100b, 210b are preferably co-located and are each in fluid communication with
the tire cavity 30.
[0021] The second embodiment of the first and second pump assembly 100, 210 works similar
in operation to the pump 41 described above. As the tire rotates in the counterclockwise
direction, the air in pump 100 is squeezed in the clockwise direction from the tire
squeezing the tube under the footprint. Air is forced from one segment 120 through
the check valve 50 and then into an adjacent segment. As the tire continues to rotate,
air is channeled through the check valves 50 and segments 120 until the air reaches
the outlet of the tube. The air is forced into the tire cavity to fill the tire. As
the tire rotates into contact with the second pump 210, pumping will continue to occur
with slightly lower pumping efficiency as described in section. This form of assembly
provides same pumping efficiency regardless of the tire rotation/mounting direction.
[0022] A third embodiment of a pump assembly 300 is shown in Figures 9-12. The pump assembly
300 comprises a plurality of tube sections 310. Interposed between the tube sections
are a plurality of bases 320. Each base 320 is solid in cross-section except for at
least two holes 322, 326, preferably three holes. A stem 324 of a check valve 340
is inserted in hole 324. The check valve 340 having a circular portion 324 which is
positioned to cover the holes 322, 326. The tube segments are joined together with
the bases 320 housing the check valves, so that the check valves are all aligned in
the same direction as shown in Figure 11. An optional cover strip may be applied over
the tube, base and check valve assembly as shown in Figure 12.
1. A self-inflating tire assembly comprising:
a tire (12) having a tire cavity (30), first and second sidewalls (32) extending respectively
from first and second tire bead regions (34) to a tire tread region (38);
a passageway (43) in the tire (12), a pump (41, 100, 210) positioned in the passageway
(43), the pump (41, 100, 210) including a tube (60), a plurality of check valves (45,
50) mounted in the tube (60) and spaced apart from each other and forming a plurality
of tube segments (110), said tube (60) having a first end in fluid communication with
the atmosphere, and a second end in fluid communication with the tire cavity (30).
2. The self inflating tire assembly of claim 1 wherein a check valve (45, 50) is positioned
at the first end of the tube (60).
3. The self inflating tire assembly of claim 1 or 2 wherein a check valve (45, 50) is
positioned at the second end of the tube.
4. The self inflating tire assembly of at least one of the previous claims wherein the
passageway (43) is formed in at least one of the sidewall (32).
5. The self inflating tire assembly of at least one of the previous claims wherein the
passageway (43) annular.
6. The self inflating tire assembly of at least one of the previous claims wherein the
passageway (43) is formed in the tread.
7. The self-inflating tire assembly of at least one of the previous claims wherein the
tire (10) has a first and a second pump (41, 100, 210) positioned in the passageway
(43) and each pump (41, 100, 210) including a tube (60), wherein the first pump has
the check valves (45, 50) oriented in a first flow direction, and the second pump
has the check valves (45, 50) oriented in a second flow direction opposite the first
flow direction.
8. The self inflating tire assembly of claim 7 wherein the first and second pumps have
their respective tube inlets co-located.
9. The self inflating tire assembly of at least one of the previous claims providing
operatively pumping action to inflate the tire cavity (30) regarding tire mounting
and/or tire rotation direction.
10. The self inflating tire assembly of at least one of the previous claims providing
operatively pumping action to inflate the tire cavity (30) disregarding tire mounting
and/or tire rotation direction.